Search Results - "Burn, David M"

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    Realization of ground state in artificial kagome spin ice via topological defect-driven magnetic writing by Gartside, Jack C., Arroo, Daan M., Burn, David M., Bemmer, Victoria L., Moskalenko, Andy, Cohen, Lesley F., Branford, Will R.

    Published in Nature nanotechnology (01-01-2018)
    “…Arrays of non-interacting nanomagnets are widespread in data storage and processing. As current technologies approach fundamental limits on size and thermal…”
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    Tailoring the Hybrid Anomalous Hall Response in Engineered Magnetic Topological Insulator Heterostructures by Chen, Peng, Zhang, Yong, Yao, Qi, Tian, Fugu, Li, Lun, Qi, Zhengkun, Liu, Xiaoyang, Liao, Liyang, Song, Cheng, Wang, Jingyuan, Xia, Jing, Li, Gang, Burn, David M, van der Laan, Gerrit, Hesjedal, Thorsten, Zhang, Shilei, Kou, Xufeng

    Published in Nano letters (11-03-2020)
    “…Engineering the anomalous Hall effect (AHE) is the key to manipulate the magnetic orders in the emerging magnetic topological insulators (MTIs). In this…”
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    Measuring magnetic hysteresis curves with polarized soft X-ray resonant reflectivity by Fan, Raymond, Aboljadayel, Razan O M, Alsaeed, Kalel, Bencok, Peter, Burn, David M, Hindmarch, Aidan T, Steadman, Paul

    Published in Journal of synchrotron radiation (01-05-2024)
    “…Calculations and measurements of polarization-dependent soft X-ray scattering intensity are presented during a magnetic hysteresis cycle. It is confirmed that…”
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    Coherent Transfer of Spin Angular Momentum by Evanescent Spin Waves within Antiferromagnetic NiO by Dąbrowski, Maciej, Nakano, Takafumi, Burn, David M., Frisk, Andreas, Newman, David G., Klewe, Christoph, Li, Qian, Yang, Mengmeng, Shafer, Padraic, Arenholz, Elke, Hesjedal, Thorsten, van der Laan, Gerrit, Qiu, Zi Q., Hicken, Robert J.

    Published in Physical review letters (29-05-2020)
    “…Insulating antiferromagnets have recently emerged as efficient and robust conductors of spin current. Element-specific and phase-resolved x-ray ferromagnetic…”
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    Creation of a Chiral Bobber Lattice in Helimagnet-Multilayer Heterostructures by Ran, Kejing, Liu, Yizhou, Guang, Yao, Burn, David M, van der Laan, Gerrit, Hesjedal, Thorsten, Du, Haifeng, Yu, Guoqiang, Zhang, Shilei

    Published in Physical review letters (08-01-2021)
    “…A chiral bobber is a localized three-dimensional magnetization configuration, terminated by a singularity. Chiral bobbers coexist with magnetic skyrmions in…”
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    Mode-Resolved Detection of Magnetization Dynamics Using X‑ray Diffractive Ferromagnetic Resonance by Burn, David M, Zhang, Shilei, Zhai, Kun, Chai, Yisheng, Sun, Young, van der Laan, Gerrit, Hesjedal, Thorsten

    Published in Nano letters (08-01-2020)
    “…Collective spin excitations of ordered magnetic structures offer great potential for the development of novel spintronic devices. The present approach relies…”
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    Suppression of Walker breakdown in magnetic domain wall propagation through structural control of spin wave emission by Burn, David M., Atkinson, Del

    Published in Applied physics letters (17-06-2013)
    “…The control of individual magnetic domain walls has potential for future spintronic memory and data processing applications. The speed and reliability of such…”
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    Electron Beam Lithography of Magnetic Skyrmions by Guang, Yao, Peng, Yong, Yan, Zhengren, Liu, Yizhou, Zhang, Junwei, Zeng, Xue, Zhang, Senfu, Zhang, Shilei, Burn, David M., Jaouen, Nicolas, Wei, Jinwu, Xu, Hongjun, Feng, Jiafeng, Fang, Chi, Laan, Gerrit, Hesjedal, Thorsten, Cui, Baoshan, Zhang, Xixiang, Yu, Guoqiang, Han, Xiufeng

    Published in Advanced materials (Weinheim) (01-10-2020)
    “…The emergence of magnetic skyrmions, topological spin textures, has aroused tremendous interest in studying the rich physics related to their topology. While…”
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    Robust Perpendicular Skyrmions and Their Surface Confinement by Zhang, Shilei, Burn, David M, Jaouen, Nicolas, Chauleau, Jean-Yves, Haghighirad, Amir A, Liu, Yizhou, Wang, Weiwei, van der Laan, Gerrit, Hesjedal, Thorsten

    Published in Nano letters (12-02-2020)
    “…Magnetic skyrmions are two-dimensional magnetization swirls that stack in the form of tubes in the third dimension and which are proposed as prospective…”
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    Using magneto-optical effects in soft X-ray reflectivity to study current driven magnetization reversal by Kiranjot, Fan, Raymond, Aboljadayel, R. O. M., Burn, David M., Alsaeed, Kalel, Hindmarch, Aidan T., Steadman, Paul

    Published in Japanese Journal of Applied Physics (02-09-2024)
    “…Abstract The soft X-ray reflectivity technique is frequently utilized for studying magnetization reversal in thin films due to its elemental and depth…”
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    Optically and Microwave-Induced Magnetization Precession in [Co/Pt]/NiFe Exchange Springs by Da̧browski, Maciej, Frisk, Andreas, Burn, David M, Newman, David G, Klewe, Christoph, N’Diaye, Alpha T, Shafer, Padraic, Arenholz, Elke, Bowden, Graham J, Hesjedal, Thorsten, van der Laan, Gerrit, Hrkac, Gino, Hicken, Robert J

    Published in ACS applied materials & interfaces (18-11-2020)
    “…Microwave and heat-assisted magnetic recordings are two competing technologies that have greatly increased the capacity of hard disk drives. The efficiency of…”
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    Element- and Time-Resolved Measurements of Spin Dynamics Using X-ray Detected Ferromagnetic Resonance by Klewe, Christoph, Li, Qian, Yang, Mengmeng, N’Diaye, Alpha T., Burn, David M., Hesjedal, Thorsten, Figueroa, Adriana I., Hwang, Chanyong, Li, Jia, Hicken, Robert J., Shafer, Padraic, Arenholz, Elke, van der Laan, Gerrit, Qiu, Ziqiang

    Published in Synchrotron radiation news (01-04-2020)
    “…Although XFMR experiments have been carried out at a number of synchrotron radiation facilities since 2004, only a few facilities currently have XFMR setups…”
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    Magnetization switching and domain-wall propagation behavior in edge-modulated ferromagnetic nanowire structures by Burn, David M., Arac, Erhan, Atkinson, Del

    “…The magnetization reversal processes in ferromagnetic nanowires with sinusoidally modulated edges were investigated as a function of modulation amplitude and…”
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